High intensity light-emitting diode luminaire assembly
11598507 · 2023-03-07
Assignee
Inventors
- Christopher Nolan (Camillus, NY, US)
- Joseph Casper (Baldwinsville, NY, US)
- Joseph Witkowski (Syracuse, NY, US)
- Jonathan Hull (Syracuse, NY, US)
Cpc classification
F21V23/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B45/56
ELECTRICITY
F21V29/75
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/0464
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/049
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/0471
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/773
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2101/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/69
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B45/56
ELECTRICITY
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A lighting assembly that includes a heatsink housing, a plurality of light emitting diode (LED) modules, and a power supply disposed within a power supply casing, wherein the power supply is for providing power to the LED modules. Each LED module includes a plurality of LEDs and is thermally connected to the heatsink housing. The power supply casing includes a structure for cooling the power supply.
Claims
1. A lighting assembly comprising: a heatsink housing; a plurality of light emitting diode (LED) modules, each of which comprises a plurality of LEDs, and each of which is thermally connected to the heatsink housing; and a power supply disposed within a power supply casing, wherein the power supply is for providing power to the LED modules, and the power supply casing comprises a structure for cooling the power supply, wherein the heatsink housing is configured for multi-angular positioning with respect to the power supply casing through a joiner bracket.
2. The lighting assembly of claim 1, wherein the lighting modules are thermally insulated from the power supply.
3. The lighting assembly of claim 1, wherein the power supply casing is not included in the heatsink housing.
4. The lighting assembly of claim 1, wherein the heatsink housing comprises a plurality of fins that face towards the power supply, and the LEDs of the LED modules face away from the power supply.
5. The lighting assembly of claim 1, wherein the LED modules are removable from the lighting assembly.
6. The lighting assembly of claim 1, further comprising a secondary lens element that is positioned over the LED modules.
7. The lighting assembly of claim 6, wherein the secondary lens element comprises a plurality of lenses.
8. The lighting assembly of claim 6, wherein the secondary lens element comprises a sealing lens that is received by the heatsink housing and that renders the lighting assembly waterproof.
9. The lighting assembly of claim 1, further comprising a mounting bracket that is configured to for multi-angle positioning of the lighting assembly.
10. The lighting assembly of claim 1, wherein the power supply comprises at least one DC power supply, the DC power supply comprising a DC-DC converter for converting incoming voltage from up to about 390 V to about 12 V DC operating voltage.
11. The lighting assembly of claim 1, further comprising a circuit board upon which the plurality of LEDs are mounted and that includes driver circuitry for driving the plurality of LEDs.
12. The lighting assembly of claim 11, wherein: each LED module comprises a plurality of parallel strings of LEDs; and the driver circuitry is configured to provide a constant current to each LED module so that voltage delivered to each string of LEDs in each LED module is automatically adjusted if any LED in the string fails.
13. The lighting assembly of claim 11, wherein the driver circuitry further comprises feedback circuitry for balancing power input to the strings of LEDs included in each LED module.
14. The lighting assembly of claim 11, wherein the driver circuitry further comprises pulse width modulation circuitry configured to enable dimming of the LEDs by varying pulse width modulation.
15. The lighting assembly of claim 11, wherein each of the LEDs is positioned on a front side of the circuit board adjacent a via element that extends through the circuit board to a via backing formed of a thermally conductive material to provide the thermal connection of the LEDs to the heatsink housing.
16. The lighting assembly of claim 1, wherein the structure for cooling the power supply comprises a plurality of fins disposed on the power supply casing.
17. A lighting assembly comprising: a heatsink housing; a plurality of light emitting diode (LED) modules, each of which comprises a plurality of LEDs, and each of which is thermally connected to the heatsink housing; a secondary lens element that is positioned over the LED modules; a power supply disposed within a power supply casing, wherein the power supply is for providing power to the LED modules, and the power supply casing comprises structure for cooling the power supply, wherein the heatsink housing is configured for multi-angular positioning with respect to the power supply casing through a joiner bracket, and wherein the LED modules are thermally insulated from the power supply.
18. The lighting assembly of claim 17 wherein the secondary lens element comprises a plurality of lenses.
19. The lighting assembly of claim 17, wherein the secondary lens element comprises a sealing lens that is received by the heatsink housing and that renders the lighting assembly waterproof.
20. The lighting assembly of claim 17, further comprising: a circuit board, and wherein each of the LEDs is positioned on a front side of the circuit board adjacent to a via element that extends through the circuit board to a via backing formed of a thermally conductive material to provide the thermal connection of the LEDs to the heatsink housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is described herein with reference to the accompanying drawings, in which similar reference characters denote similar elements throughout the several views. It is to be understood that in some instances, various aspects of the invention may be shown exaggerated, enlarged, exploded, or incomplete to facilitate an understanding of the invention.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
(28)
DETAILED DESCRIPTION OF THE INVENTION
(29) A high intensity LED luminaire (HILL) assembly (also known in the art as a high intensity LED light fixture, high intensity LED light fitting or LED luminaire) is provided. The HILL assembly can be used indoors or outdoors, and in wet, damp or dry environments. In various embodiments, the HILL can be powered by a universal AC (90-480 VAC, 47-440 Hz) or a DC (12-480 VDC) electrical supply. The operational temperature range for the HILL is from about −40° C. to about +80° C. In a preferred embodiment, the HILL assembly comprises a heatsink, referred to herein as a “heatsink housing,” that serves the dual purpose of functioning as the housing for the HILL assembly and as the heatsink for the HILL assembly.
(30) A HILL assembly in accordance with a first embodiment of the present invention can comprise a LED module that is replaceable (or exchangeable or interchangeable) having a plurality of LEDs disposed in a LED array; an array of concavo-convex lenses (CCLs, also known in the art as “concave meniscus” lenses) disposed adjacent to the LED array; a thermal insulator; a heatsink housing; a power supply and associated circuitry; and a circuit board for controlling the LED array by thermal via technology. The LEDs are mounted directly on the circuit board. A first embodiment HILL assembly is well adapted for use, for example, as a floodlight, spotlight, worklight, or hand-held flashlight.
(31) In a second embodiment, the LEDs are arranged in a circular or rectilinear modular array. Modules in the modular array may be ganged together into larger units for use in, for example, overhead room lighting, desk lighting, street lighting, or stadium lighting. Lenses can be adjustable to vary the size and shape of the field illuminated by each LED. In certain embodiment, the power supply driving circuitry can be positioned or mounted directly on the circuit board.
(32) In various embodiments, the HILL assembly can be used for lighting indoor or outdoor areas or for flood lighting. It can be used in high bay or low bay applications. It will be apparent to the skilled artisan that the HILL assembly has many uses for illuminating commercial or industrial settings, but can also be used in residential settings. The commercial or industrial settings in which the HILL assembly can be used can include, but are not limited to, offices, manufacturing facilities, warehouses, parking garages, ball parks, stadiums, and storage areas.
(33) For clarity of disclosure, and not by way of limitation, the detailed description of the invention is divided into the subsections set forth below.
5.1. HIGH INTENSITY LED LUMINAIRE (HILL) ASSEMBLY—FIRST EMBODIMENT
(34) Referring now to
(35) Lens Element
(36) HILL assembly 10 comprises a single secondary lens element 12 (
(37)
(38) LED Array
(39) HILL assembly 10 comprises a LED array 20 comprising a plurality of LEDs 18 positioned in the array (see
(40) HILL assembly 10 also comprises one or more securing screws 44 (
(41) The LED array 20 comprises a circuit board or card 46 (
(42) The LED array 20 preferably comprises parallel strings of LEDs 18, which arrangement confers several advantages. First, this allows for graceful degradation as the array ages. For example, in an embodiment with four parallel strings of LEDs, two of the four strings can fail and the light will still provide the rated lumen output. Second, the LED array does not experience hot spots that reduce LED lifespan. By balancing the current through each string to be within 1% of one another, the LED array runs at a uniform temperature. Hot spots form on a LED array when designs use parallel strings without current balancing. As the array powers up, most of the current travels down the string with the lowest voltage potential. Since not all LEDs are created equal, this will happen. When a single string uses more current than the other strings, those LEDs heat up faster than the others. As the string heats up, the LEDs' voltage potential drops, which in turn causes the LEDs to consume more current from the cooler strings. This effect is known in the art as “thermal runaway” and causes LED arrays to fail prematurely.
(43) In contrast to existing HILL assemblies that have LED arrays either permanently bonded to the heatsink housing 22 or connected through use of a thermal paste, a HILL assembly 10 in accordance with the present invention comprises a LED module 18 comprising a LED array 20 that is a removable and/or exchangeable component and not a permanently installed component of the HILL assembly. The LED array 20 is preferably a component of a LED module 18, but can also be a separate, exchangeable component within the scope of the present invention. Preferably, the LED module 18 comprises pre-installed thermal gaskets or pads 30, so that the end user does not have to apply any thermal paste (which is a tedious, delicate process) when exchanging or replacing the LED module. When installed, the LED module 18 is thermally in contact with heatsink housing 22, which is a high-efficiency finned, thermal radiator, so that heat is dispersed from the module via the heatsink. The LED module 18 is mounted on and removed from the heatsink housing 22 via securing screws 48 (
(44) Heatsink or Heatsink Housing
(45) HILL assembly 10 can comprise a heatsink that also functions as a heatsink housing 22 (
(46) Thermal extrusion of the heatsink housing 22 can be used for efficient thermal management. The finned design generates a large surface area over a small length, effectively pulling heat away from the LED components. Additionally, the open cavity 56 of the heatsink housing serves as the housing for internal components, comprising at least one power supply 24. In various embodiments, the open cavity 56 can house a plurality of power supplies.
(47) Heatsink housing 22 comprises a groove 23 (
(48) Heatsink housing 22 can also comprise fins 62 (
(49) In certain embodiments, the heatsink housing is waterproof and/or submersible.
(50) In another embodiment, the mounting bracket 60 is capable of multi-angle positioning.
(51) Components for Positioning and Reducing Off-Angle Glare
(52) Prior art luminaires reduce off-angle glare through the addition of a spun metal or refractive plastic shield, which is an additional cost. These shields are relatively large and totally block off-angle glare but do not block the dispersion of the light source, thus wasting off-angle light output of the device.
(53) The secondary lens 12 of the first embodiment of the HILL assembly 10 can comprise a frosted lip 19 (
(54) In another embodiment, the HILL assembly can comprise a mounting bracket 60 (
(55) As a single fixture, HILL assembly 10 supports free hanging, ceiling, wall, stanchion, and pendant mounting and can optionally comprise a sensor for sensing an environmental parameter of interest, such as an ambient light sensor 64 and/or an occupancy sensor 66 (
(56) For example, in one embodiment, the ambient light sensor 64 has the ability to generate a user-defined light output profile, as described further below, based on user defined schedules or personnel detection and ambient light measuring. Light output is adjusted based on currently available light, to save the user energy by not duplicating light.
(57) In another embodiment, the occupancy sensor 66 turns the light on/off based on user-defined time intervals.
(58) Because HILL assembly 10 has a brick-like design that supports multi-module ganging or stacking, a single HILL assembly 10 can be ganged with other like fixtures to make, e.g., a spot light 68 (
(59) Because HILL assembly 10 has instant on/off capabilities, it can be used in power management schemes to generate user-defined light output profiles based on user-defined schedules or personnel detection and ambient light measuring. HILL assembly 10 can be used to generate light output based on detection of currently available light (e.g., with optional ambient light sensor 66) and to save the user energy by not duplicating light. In addition, in embodiments in which an occupancy sensor installed, HILL assembly 10 can detect, and be used in, power management schemes that switch the light on or off based on user-defined time intervals.
(60) In one embodiment, HILL assembly 10 can predict or indicate how much time is left on the light until the lumen output decays below the L70 level (70% of lumen output at time=0 hours).
(61) In another embodiment, HILL assembly 10 can comprise a programmable timer or timing function. Such programmable timers or timing functions are well known in the art.
(62) Table 1 presents ranges of dimensions for various elements of HILL assembly 10, as well as the dimensions of one preferred embodiment. It will be apparent to the skilled artisan that other suitable dimensions can be easily determined for the components of the HILL listed below, as well as for other components described herein.
(63) TABLE-US-00001 TABLE 1 Length (in) Width (in) Height (in) Part Preferred Max Min Preferred Max Min Preferred Max Min Secondary 7 24 0.5 7 24 0.5 0.88 6 0.1 Lens 12 LED Array 6.15 24 0.25 6.15 48 0.25 0.06 0.25 0.01 20 LED 7 24 0.25 7 48 0.25 0.95 6 0.1 Module16 Heatsink 7 14 0.5 7 14 0.5 11 24 0.1 22 Mounting 8.17 48 0 7.45 48 0 2 6 0 Bracket 60
5.2. HIGH INTENSITY LED LUMINAIRE (HILL) ASSEMBLY—SECOND EMBODIMENT
(64) A HILL assembly is also provided that is based on a modular design. In various embodiments, the HILL assembly can comprise modular lensing provided by, e.g., a lens matrix, a plurality of LED modules or modular LED arrays, joiner brackets that allow for modularity and custom angular positioning of light output, modular heatsink housing(s) and high power modular circuits (that can operate, for example, at high temperatures).
(65) The modular lensing allows for mixing and matching of distribution patterns, which can provide precise, including but not limited to custom, optical controls.
(66) The LED modules or modular LED arrays can have a shared cover design that allows for stacking or joining of multiple modules without the need for fasteners. An advantage of this design is that it does not interfere with the function of the heatsink. The design can allow heat to be pulled with convectional heat transfer.
(67) The cover can also allow for modules to be attached by a joiner bracket as separate units with the cover holding them together. In a specific embodiment, a power supply can be positioned in the middle of such a modular arrangement.
(68) Referring now to
(69) HILL assembly 110 comprises a linear, one-piece, finned, metal heatsink housing 122 formed preferably by extrusion of an aluminum alloy (see
(70) The HILL assembly can be thermally optimized for heat transfer through gable and ridge vent thermal optimization.
(71) A plurality of formed channels 124 receive a plurality of screws 126 that secure end cap 128 (also referred to herein as gable end cap) to heatsink 122, as shown in
(72) A plurality of mating features, e.g., T-slots 130 can receive mating features (e.g., T-mating features) 132 extending from LED module (also referred to herein as LED subassembly) 134, as shown in
(73) Opposed lips 136 receive opposed edges of a sealing lens 137, protectively enclosing LED module 134, and in certain embodiments, rendering it waterproof. In one embodiment, the sealing lens can be made of a transparent thermoplastic such as poly(methyl methacrylate) (PMMA).
(74) A joiner (or “joiner bracket”) 140 is also provided. Outer beaded fins 138 can receive mating edges of the joiner 140 in either a single-module HILL assembly, as shown in
(75) In one embodiment, a HILL assembly module 142 can comprise a heatsink housing 122, a LED module 134, and a sealing lens 137. Such a HILL assembly module 142 may be employed singly or ganged in a wide variety of configurations determined by lighting requirements and space. For example, a single module assembly can form a desk lamp or under-cabinet kitchen lamp; a double module assembly such as is shown in
(76) A bracket arm 148 is connected to either the endcap or the joiner 140 on each side of the HILL assembly. The bracket arms 148 can contain or enclose the wiring for the power supply 150 and connect to each side of the power supply casing 146. A bracket cover 149 can cover the bracket arm. Inside the casing 146, at least one DC power supply 150, and in a specific embodiment, two DC power supplies 150, can be attached. The power supply casing permits cooling of the power supply 150.
(77) Referring now to
(78) The HILL assembly can have on-board “string” control and current sharing, i.e., constant on-time current control. Referring now to
(79) Circuitry 166 for driving the LEDs 162 is mounted directly on circuit board 160, allowing the constant current feature just described, and is connected to first and second multi-prong connectors 168a, 168b at opposite ends of circuit board 160, allowing connection to adjacent modules 134.
(80) Because circuitry 166 is designed specifically for these applications and is not bought off-the-shelf, circuitry 166 can be formed, in one embodiment, as an integral element of circuit board 160. This results in greatly increased electrical efficiency of 100 lumens/watt, whereas prior art systems typically operate in the range of 80 lumens/watt. Because the light output is greater, there is less waste electrical energy and less heat generated, e.g., thermal density is reduced. This permits LEDs 162 to run continuously at only 80° C. or lower, whereas prior art systems being driven at such high light outputs must run at greater than 100° C. and are therefore prone to thermal runaway and failure.
(81) Because circuitry 166 can operate at constant current, the power flowing to the individual LED strings 164 is balanced, preventing thermal runaway. Referring to
(82) The HILL assembly can have optimized thermal transfer from the LED array to the heatsink housing through a thermally conductive material. In one embodiment, to disperse and equalize the heat generated by LEDs 162, each LED can be positioned on the front side of circuit board 160 adjacent at least one via element (not visible) extending through circuit board 160 into connection with a via backing (not visible) on circuit board 160 formed of a thermally conductive material such as copper, beryllium oxide, aluminum, FR4, or graphene.
(83) A secondary lens 170, similar to secondary lens 12 in first embodiment 10, is disposed over each LED 162. Lenses 170 preferably are formed in modular lens matrices (also referred to herein as lens subassemblies) 172 of lenses, e.g., a 4×4 array of 16 lenses (although other suitable lens matrices can be determined by the skilled artisan) arranged in a square matrix that can be screwed down on top of its respective LEDs, as shown in
(84) To vary the size and shape of the field illuminated by each LED, the individual lenses 170 may be varied in capability, as shown in modular lens matrices (also referred to herein as lens subassemblies) 172a and 172b in
(85) The lenses in the modular lens matrix can be rotated or adjusted to achieve different lighting configurations with the same HILL assembly.
(86) In one embodiment, each HILL assembly module 142 is preferably about 12 inches long and the 64 LEDs 164 are powered to emit 64,000 lumens of light. Other suitable module lengths (in the range, for example, of 6-12 inches, 12-24 inches, 24-35 inches) will be readily apparent the skilled artisan. Modules can be used to create any desired configuration of modules, e.g., 1×2, 1×3 m 1×4 m 2×2, 2×3, 3×3, 3×4, 4×4 etc.
(87) A currently preferred embodiment, as shown in
(88) Referring now to
(89) In typical prior art applications, a constant current supply is utilized without the use of circuitry to vary the output voltage, meaning that the constant current power supply's output voltage just climbs to whatever voltage the highest LED string needs. The other strings that require less voltage need to dissipate the excess power created by the high voltage setting which leads to inefficient and less reliable designs. In the prior art, if the number of LEDs were to change, a new version of constant current power supply would need to be selected.
(90) In certain embodiments, the LEDs 162 can be dimmable by pulse width modulation (PWM). Thus, the HILL assembly can also comprise pulse width modulation (PWM) circuitry. The PWM circuitry converts the 0-10V analog signal to a PWM signal.
(91) A method for maintaining a constant LED color temperature (CCT) and/or a color rendering index (CRI) in a lighting assembly (e.g., a HILL assembly) is also provided. The method comprises the steps of using constant drive current, thereby decreasing photon emissions; and varying pulse width modulation (PWM). These steps together provide overall dimming of the light output at frequencies higher than are currently on the market. Constant CCT and CRI are maintained while dimming from 100% to 0% because of this pulse width modulation (PWM).
(92) With PWM come the benefits of maintaining a constant LED color temperature (CCT) and color rendering index (CRI). Preferably, PWM is conducted at higher frequencies in the range of 10 kHz to 20 kHz to comply with high definition cameras/filming. The higher frequency range also allows elimination of any audible noise in applications where necessary to do so.
(93) In a specific embodiment, pulse width modulation (PWM) can be used at a frequency of 10 GHz to 24 GHz as a method to dim the light output. This frequency range allows the light output to be dimmed at an optimal frequency that is ideal for not interfering with other visible activities, including, but not limited to high definition television recording and broadcasting. Using PWM to dim the light output maintains the Color Rendering Index (CRI) and Color Temperature (CCT) of the LED.
(94) In certain embodiments, the HILL comprises a 0-10V dimmer circuit. This allows the advantage of using a commercially available 0-10V dimmer switch, but such a switch does not provide a pulse width modulation (PWM) output.
(95) In one embodiment, the HILL assembly is preferably IEC6929 annex compliant (on board) for 0-10V operation.
(96) In a preferred embodiment, a HILL assembly comprises both a 0-10V dimmer circuit and a pulse width modulation (PWM) circuit. Positioning the circuitry adjacent to, or in association with the LEDs is particularly preferred. 2) there is constant voltage 3) pulse width modulation.
5.3. METHODS FOR MAKING HILL ASSEMBLIES
(97) The HILL assemblies disclosed herein can be made using conventional manufacturing techniques known in the art. The construction of the elements of the HILL assemblies will be readily apparent to the skilled practitioner. For example, heatsinks can be produced by conventional extrusion techniques. Power supplies and circuit boards are also made using conventional methods. No special manufacturing techniques or manufacturing environments are needed to produce the assemblies.
5.4. INDEX FOR NUMBERED ELEMENTS
(98) 10 HILL assembly, first embodiment 12 lens (or secondary lens) element 14 CCLs 16 LED module 18 LEDs 19 frosted lip 20 first LED array 22 heatsink housing 23 groove surrounding the openings of cavity 56 24 power supply 25 concave lens surface of each CCL 14 26 convex lens surface 28 first O-ring 30 first and second thermal gaskets 32 interface plate 34 second O-ring for sealing heatsink housing 22 at the front end 36 third O-ring for sealing heatsink housing 22 at the rear end back plate 38 back plate 40 junction box 42 sealing gaskets 44 securing screws 46 circuit board or card 48 securing screws 50 bores 52 power supply connector 54 screws 56 open cavity 60 mounting bracket 62 fins of heatsink housing 22 64 ambient light sensor 66 occupancy sensor 68 spot light 70 arena/stadium light 72 linear fixture for wider angle lighting 110 HILL assembly, second embodiment 122 linear, one-piece, finned, metal heatsink housing 124 channels 126 screws 128 end plate 129 opening in end plate 130 T-slots 132 mating T-features 134 LED module 136 opposed lips 137 sealing lens 138 outer beaded fins 140 joiner 140 142 HILL assembly module 144 16-module assembly 146 power supply casing 148 bracket arm 149 bracket cover 150 power supply 151 electrical access cover 152 power supply wires 154 openings to allow venting of heated air from the fins 156 bottom panel 160 circuit board 162 LEDs 166 driver circuitry for driving the LEDs 168a, 168b first and second multi-prong connectors 170 secondary lens 172, 172a and 172b lens matrix 174 round lenses 176 butterfly lenses 178 skinny lenses 180 LED driver
(99) The present invention is not to be limited in scope by the specific embodiments described herein. Indeed, various modifications of the invention in addition to those described herein will become apparent to those skilled in the art from the foregoing description. Such modifications are intended to fall within the scope of the appended claims.
(100) While embodiments of the present disclosure have been particularly shown and described with reference to certain examples and features, it will be understood by one skilled in the art that various changes in detail may be effected therein without departing from the spirit and scope of the present disclosure as defined by claims that can be supported by the written description and drawings. Further, where exemplary embodiments are described with reference to a certain number of elements it will be understood that the exemplary embodiments can be practiced utilizing either less than or more than the certain number of elements.
(101) All references cited herein are incorporated herein by reference in their entirety and for all purposes to the same extent as if each individual publication, patent or patent application was specifically and individually indicated to be incorporated by reference in its entirety for all purposes.
(102) The citation of any publication is for its disclosure prior to the filing date and should not be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention.